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基于运动的视频监测用于家畜疾病的早期检测:以非洲猪瘟为例。

Motion-based video monitoring for early detection of livestock diseases: The case of African swine fever.

作者信息

Fernández-Carrión Eduardo, Martínez-Avilés Marta, Ivorra Benjamin, Martínez-López Beatriz, Ramos Ángel Manuel, Sánchez-Vizcaíno José Manuel

机构信息

VISAVET Center and Animal Health Department, Veterinary School, Universidad Complutense de Madrid, Madrid, Spain.

MOMAT Research group, IMI-Institute and Applied Mathematics Department, Universidad Complutense de Madrid, Madrid, Spain.

出版信息

PLoS One. 2017 Sep 6;12(9):e0183793. doi: 10.1371/journal.pone.0183793. eCollection 2017.

Abstract

Early detection of infectious diseases can substantially reduce the health and economic impacts on livestock production. Here we describe a system for monitoring animal activity based on video and data processing techniques, in order to detect slowdown and weakening due to infection with African swine fever (ASF), one of the most significant threats to the pig industry. The system classifies and quantifies motion-based animal behaviour and daily activity in video sequences, allowing automated and non-intrusive surveillance in real-time. The aim of this system is to evaluate significant changes in animals' motion after being experimentally infected with ASF virus. Indeed, pig mobility declined progressively and fell significantly below pre-infection levels starting at four days after infection at a confidence level of 95%. Furthermore, daily motion decreased in infected animals by approximately 10% before the detection of the disease by clinical signs. These results show the promise of video processing techniques for real-time early detection of livestock infectious diseases.

摘要

传染病的早期检测可大幅降低对畜牧生产的健康和经济影响。在此,我们描述一种基于视频和数据处理技术的动物活动监测系统,以检测因感染非洲猪瘟(ASF)而导致的活动放缓和衰弱,ASF是养猪业面临的最重大威胁之一。该系统对视频序列中基于运动的动物行为和日常活动进行分类和量化,实现实时自动化和非侵入式监测。此系统的目的是评估动物在实验感染ASF病毒后的运动显著变化。事实上,猪的活动能力在感染后第四天开始逐渐下降,并在95%的置信水平下显著低于感染前水平。此外,在通过临床症状检测到疾病之前,感染动物的日常活动减少了约10%。这些结果表明视频处理技术在实时早期检测家畜传染病方面具有前景。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a76f/5587303/33a28db12764/pone.0183793.g001.jpg

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